Unlocking the full potential of Sentinel-1 for flood detection in arid regions

遥感 干旱 大洪水 环境科学 地质学 地理 古生物学 考古
作者
Shagun Garg,Antara Dasgupta,Mahdi Motagh,Sandro Martinis,Sivasakthy Selvakumaran
出处
期刊:Remote Sensing of Environment [Elsevier BV]
卷期号:315: 114417-114417 被引量:47
标识
DOI:10.1016/j.rse.2024.114417
摘要

Climate change has intensified flooding in arid and semi-arid regions, presenting a major challenge for flood monitoring and mapping. While satellites, particularly Synthetic Aperture Radar (SAR), allow synoptically observing flood extents, accurately differentiating between sandy terrains and water for arid region flooding remains an open challenge. Current global flood mapping products exclude arid areas from their analyses due to the sand and water confusion, resulting in a critical lack of observations which impedes response and recovery in these vulnerable regions. This paper explores the full potential of Sentinel-1 SAR to improve near-real-time flood mapping in arid and semi-arid regions. By investigating the impact of various parameters such as polarization, temporal information, and interferometric coherence, the most important information sources for detecting arid floods were identified. Using three distinct arid flood events in Iran, Pakistan, and Turkmenistan, different scenarios were constructed and tested using RF to evaluate the effectiveness of each feature. Permutation feature importance analysis was additionally conducted to identify key elements that reduce computational costs and enable a faster response during emergencies. Fusing VV coherence and amplitude information in pre-flood and post-flood imagery proved to be the most suitable approach. Results also show that leveraging crucial features reduces computational time by ∼ 35% as well as improves flood mapping accuracy by ∼ 50%. With advancements in cloud processing capabilities, the computational challenges associated with interferometric SAR computations are no longer a barrier. The demonstrated adaptability of the proposed approach across different arid areas, offers a step forward towards improved global flood mapping. • Arid flooding currently unobserved by SAR due to sand/water backscatter similarities. • Fusing SAR coherence and amplitude dramatically improves arid region flood mapping. • Co-polarized amplitude and coherence change detection optimal for arid flood detection. • Optimizing input features yields similar mapping accuracy with lower compute costs.
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